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Rapid functionalization of gold monolayer protected clusters for fabricating electronic noses.

机译:金单层保护簇的快速功能化,用于制造电子鼻。

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摘要

This thesis describes 1) the kinetics of vapor phase place exchange reactions on films of gold monolayer protected clusters (Au MPCs) to alter the functionality of the Au MPCs, 2) applications of the reaction for altering chemiresistive sensing selectivity for volatile organic compounds (VOCs), and 3) the fabrication of a chemiresistive electronic nose for detecting VOCs based on sensor arrays and vapor phase place-exchange reaction. The motivation of this work was to develop a simple and effective method to synthesize and functionalize films of Au MPCs for applications in nanoelectronics, sensing, and catalysis.;In addition to mercaptoethanol, we exchanged films of C6S Au MPCs with mercaptopropionic acid (MPA) and mercaptopropyltrimethoxy silane (MPTMS) for building a sensor array consisting of four devices to detect various VOCs, including toluene, IPA, ethanol, and acetone with improved selectivity and recognition. These electronic nose devices, created through vapor phase place exchange reactions, generate a unique response pattern for each of the vapors, allowing us to differentiate them by pattern recognition methods. This study Indicates that vapor phase place exchange reactions have broad potential applications in selective vapor sensing.;The vapor phase place exchange reaction can be used for mass production of films of metal MPCs with various functionalities. There are several benefits over solution phase place exchange or direct synthesis of Au MPCs with different functionality, such as it is simple, fast, massively parallel, allows functionalities that would not be possible in solution, and provides control over the extent of exchange from 0 to almost 100%. Potential future applications include synthesizing metal MPC catalysts, electronic sensors, and chemical separators easily with low cost.;We first synthesize hexanethiolate-coated gold monolayer-protected clusters (C6S Au MPCs) and then prepare a film by drop-cast deposition. Placing the film of C6S Au MPCs into a closed container with mercaptoethanol leads to the replacement of the hexanethiolate ligands with mercaptoethanol ligands by vapor phase place-exchange. Nuclear magnetic resonance (NMR) and Fourier transform infrared (FTIR) spectroscopy allowed a determination of the reaction kinetics. After one day of exchange, up to 91 percent of the hexanethiolates (C6S) were replaced with mercaptoethanol (OHC2S). The resistance of the films decreased from 250 MΩ to 150 MΩ after the one-day exchange. Importantly, the chemiresistive sensing response ratio to isopropanol (IPA) versus toluene gradually changed from 0.3 (IPA/TOL) for pure C6S Au MPCs to 1.8 after exchange with mercaptoethanol (91%).
机译:本论文描述了1)在金单层保护簇(Au MPC)膜上进行气相位交换反应的动力学,以改变Au MPC的功能; 2)反应用于改变对挥发性有机化合物(VOC)的化学感应选择性的反应),以及3)基于传感器阵列和气相位置交换反应检测VOC的化学阻性电子鼻的制造。这项工作的目的是开发一种简单有效的方法来合成和功能化Au MPC膜,以用于纳米电子学,传感和催化。;除了巯基乙醇,我们还将C6S Au MPC膜与巯基丙酸(MPA)交换了用于制造传感器阵列的巯基丙基三甲氧基硅烷(MPTMS),该阵列由四个装置组成,可检测各种VOC,包括甲苯,IPA,乙醇和丙酮,并具有更高的选择性和识别性。这些通过汽相交换反应产生的电子鼻装置会为每种蒸汽生成独特的响应模式,从而使我们能够通过模式识别方法来区分它们。这项研究表明,气相位置交换反应在选择性气相传感中具有广泛的潜在应用。气相位置交换反应可用于批量生产具有各种功能的金属MPC膜。与具有不同功能的Au MPC的溶液相交换或直接合成相比,有多个好处,例如,简单,快速,大规模并行,允许在溶液中无法实现的功能,并提供从0开始的交换程度控制几乎达到100%。潜在的未来应用包括以低成本轻松合成金属MPC催化剂,电子传感器和化学分离器。我们首先合成涂有己硫醇盐的金单层保护簇(C6S Au MPC),然后通过滴铸沉积制备薄膜。将C6S Au MPC薄膜放入带有巯基乙醇的密闭容器中,可通过气相位置交换将巯基乙醇配体替换为己硫醇酯配体。核磁共振(NMR)和傅立叶变换红外(FTIR)光谱可以确定反应动力学。交换一天后,多达91%的己硫醇盐(C6S)被巯基乙醇(OHC2S)取代。交换一天后,薄膜的电阻从250MΩ降低到150MΩ。重要的是,对异丙醇(IPA)与甲苯的化学感应响应比从纯C6S Au MPC的0.3(IPA / TOL)逐渐变为与巯基乙醇(91%)交换后的1.8。

著录项

  • 作者

    Yang, Yang.;

  • 作者单位

    University of Louisville.;

  • 授予单位 University of Louisville.;
  • 学科 Chemistry Inorganic.
  • 学位 M.S.
  • 年度 2011
  • 页码 76 p.
  • 总页数 76
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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